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Satoskar, A. R.

Publications and source records attributed to Satoskar, A. R..

5 recordsLinked to original sources

Leishmania mexicana Centrin Knock out Parasites Promote M1-polarizing Metabolic Changes

Leishmaniasis is a tropical disease present in more than 90 countries. Presently, there is no approved vaccine for human use. We have previously developed live attenuated L. mexicana Cen-/- (LmexCen-/-) as a vaccine candidate that showed excellent efficacy that was characterized by reduced activation of Th2 responses and enhanced Th1 responses, contrary to wild type L. mexicana (LmexWT) infection. Towards understanding the interplay between immune mechanisms of protection and metabolic reprogramming, we applied untargeted mass spectrometric analysis to LmexCen-/- and compared them with LmexWT infection. Data showed that enriched pentose phosphate pathway (PPP) in ears immunized with LmexCen-/- parasites, compared to naive and LmexWT-infected ears. This pathway is known to promote an M1 phenotype in macrophages, suggesting a switch to a pro-inflammatory phenotype following LmexCen-/- inoculation. Accordingly, inhibition of the PPP in macrophages cultured with LmexCen-/- parasites led to diminished production of nitric oxide, IL-12, and IL-1{beta}, hallmarks of classical activation. Overall, our study revealed novel immune regulatory mechanisms that may be critical for the induction of protective immunity.

microbiology↗

Leishmania mexicana Promotes Pain-reducing Metabolomic Reprogramming In Cutaneous Lesions

Cutaneous leishmaniasis (CL) is characterized by extensive skin lesions associated with an aggressive inflammatory reaction. Despite the extensive inflammation, CL lesions are usually painless, indicating that Leishmania infection may trigger anti-nociceptive activities in the infected tissues. To this date, the molecular mechanisms responsible for this clinical phenomenon have not been identified. Through an untargeted metabolomic analysis by mass spectrometry, we found enriched anti-nociceptive metabolic pathways in mice infected with Leishmania (L.) mexicana. In particular, endogenous purines were elevated at the lesion site during chronic infection, as well as in vitro in infected macrophages, compared to non-infected mice. These purines have known anti-inflammatory and analgesic properties by acting through adenosine receptors and inhibiting transient receptor potential channels of the vanilloid subtype 1 (TRPV1). Additionally, purine metabolites can promote interleukin (IL)-10 production, with a subsequent decrease in inflammation and pain sensitivity. We also found arachidonic acid metabolism enriched in the ear lesions compared to the non-infected controls. Arachidonic acid is a metabolite of anandamide (AEA) and 2-arachidonoylglycerol (2-AG). These endocannabinoids act on cannabinoid receptors 1 and 2 and TRPV1 channels to exert anti-inflammatory and analgesic effects. Our study provides the first evidence of metabolic pathways upregulated during L. mexicana infection that may mediate anti-nociceptive effects experienced by CL patients and identifies macrophages as a source of these metabolites. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=170 SRC="FIGDIR/small/503319v1_ufig1.gif" ALT="Figure 1"> View larger version (49K): org.highwire.dtl.DTLVardef@576ef2org.highwire.dtl.DTLVardef@34d939org.highwire.dtl.DTLVardef@1a13478org.highwire.dtl.DTLVardef@7bcab6_HPS_FORMAT_FIGEXP M_FIG L. mexicana infection promotes the production of purines, as well as endocannabinoid mediators, which could act on different channels of dorsal root ganglia neuron to inhibit nociception. C_FIG

microbiology↗

Dual scRNA-Seq analysis reveals rare and uncommon parasitized cell populations in chronic L. donovani infection

Although phagocytic cells are documented targets of Leishmania parasites, it is unclear whether these parasites can infect other cell types. In this study, we describe a computational approach that exploits scRNA-seq to simultaneously analyze the transcriptomic signatures of the host cell and to identify rare and uncommon cells that harbor Leishmania donovani in the spleen and bone marrow. Individual cells were annotated as parasitized based on the presence of L. donovani transcripts that were detected with high accuracy. This unbiased approach allowed identification of heterogenous parasitized cell populations that cannot be detected by conventional methods. Consistent with previous studies, analysis of spleen cells isolated from L. donovani infected mice revealed inflammatory monocytes as the dominant parasitized cells. In addition, megakaryocytes, basophils, and NK cells were found to be the rare cells infected in the spleen. Unexpectedly, hematopoietic stem cells (HSCs), not known to be phagocytic, were the dominant cells parasitized cell in the bone marrow. In addition, eosinophils, megakaryocytes, and basal cells were the rare bone marrow cells found to be infected. scRNA-seq analysis revealed known phagocytic receptors Fc{gamma}R and CD93 are expressed on HSCs. In vitro studies using purified HSCs showed that these cells can phagocytize L. donovani. Parasitized HSCs were also detectable in the bone marrow of mouse infected with L donovani.. This unbiased dual scRNA-seq approach enables identification of rare and uncommon parasitized cells that could be involved in pathogenesis, persistence, and protective immunity. Further, such approach could be used to study pathogenesis of other infectious agents.

immunology↗

Centrin-deficient Leishmania mexicana confers protection against Old World visceral leishmaniasis

Leishmaniasis is one of the top neglected tropical diseases with significant morbidity and mortality in low and middle-income countries (LMIC). However, this disease is also spreading in the developed world. Currently, there is a lack of effective strategies to control this disease. Vaccination can be an effective measure to control leishmaniasis and has the potential to achieve disease elimination. Recently, we have generated centrin gene-deleted new world L. mexicana (LmexCen-/-) parasites using CRISPR/Cas9 and showed that they protect mice against a homologous L. mexicana infection that causes cutaneous disease. In this study, we tested whether LmexCen-/- parasites can also protect against visceral leishmaniasis caused by L. donovani in a hamster model. We show that immunization with LmexCen-/- parasites is safe and does not cause lesions. Furthermore, such immunization conferred protection against visceral leishmaniasis caused by a needle-initiated L. donovani challenge, as indicated by a significant reduction in the parasite burdens in the spleen and liver and lack of mortality. Similar control of parasite burden was also observed against a sand fly mediated L. donovani challenge. Importantly, immunization with LmexCen-/- down-regulated the Th2 response as indicated by a significant reduction in the anti-inflammatory cytokines such as IL-10 and IL-4 and increased pro-inflammatory cytokine IFN-{gamma} resulting in higher IFN-{gamma}/IL-10 and IFN-{gamma}/IL4 ratios compared to non-immunized animals. This contrasts with our studies with L. major centrin deletion mutants that showed a dominant Th1 response compared to L. major wild-type infection suggesting the divergent mechanisms of protection in the two mutant parasites. LmexCen-/- immunization resulted in long-lasting protection against L. donovani infection. Further, since the efficacy of LmCen-/- has not been determined against Leishmania strains prevalent in the Americas, LmexCen-/- may be a viable alternative. Taken together, our study demonstrates that immunization with LmexCen-/- parasites is safe and efficacious against old world visceral leishmaniasis.

immunology↗

Skin resident memory cells generated by the L. major centrin gene deleted parasites mediate protective immune response analogous to leishmanization

Leishmaniasis is a vector-borne parasitic disease transmitted through the bite of a sand fly with no available vaccine for humans. Recently, we have developed a live attenuated Leishmania major centrin gene deleted parasite strain (LmCen-/-) that induced protection against a homologous and heterologous challenges. The protection is mediated by IFN{gamma} secreting CD4+ T effector cells and multifunctional T cells, which is analogous to leishmanization. Previously, skin tissue resident memory T cells (TRM cells) were shown to be crucial for host protection in a leishmanization model. In this study, we evaluated generation and function of skin TRM cells following immunization with LmCen-/- parasites and compared those with leishmanization. In the absence of recoverable LmCen-/- parasites, the skin of immunized mice showed functional TRM cells comparable to leishmanized mice. The generation of the skin TRM cells was supported by the induction of cytokines and chemokines essential for their production and survival. Following challenge infection with wild type L. major, TRM cells specific to L. major were rapidly recruited and proliferated at the site of infection in the immunized mice which was similar to leishmanization. Further, upon challenge, CD4+ TRM cells induced higher levels of IFN{gamma} and Granzyme B in the immunized and leishmanized mice than non-immunized mice. Taken together, our studies demonstrate that a genetically modified live attenuated Leishmania vaccine generates functional CD4+ TRM cells that mediate protection and can be a safer alternative to leishmanization.

immunology↗